IP Library › Granted Patent US 12,622,131
Granted Patent B2
US 12,622,131 · App. 17/789,700 · Granted May 5, 2026

Organic electroluminescent device, display panel, and display apparatus

Inventor: Yong Wu (Beijing, CN)
Assignee: BOE Technology Group Co., Ltd.
H10K50/121H10K85/631H10K85/636H10K85/654H10K85/6572H10K85/6574H10K2101/30H10K2102/351
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Quick Facts
Patent No.
US 12,622,131
App. No.
17/789,700
Granted
May 5, 2026
Kind
B2
Abstract

Provided are an organic electroluminescent device, a display panel, and a display apparatus. An exciton layer adjacent to a light-emitting layer is added, and the exciton layer serves as an exciton recombination region and achieves the effect of increasing the density of excitons, where the singlet-state energy level of the exciton layer is higher than the singlet-state energy level of a host material in the light-emitting layer, and an emission spectrum of the exciton layer and an absorption spectrum of the host material in the light-emitting layer have an overlapping area. Moreover, the exciton layer allows triplet-state excitons formed in the exciton layer to form singlet-state excitons via a reverse intersystem crossing process.

Claims (30)

1 . An organic electroluminescent device, comprising:

an anode and a cathode, arranged in opposite;

a light-emitting layer, between the anode and the cathode; and

an exciton layer, adjacent to the light-emitting layer, wherein the exciton layer, the light-emitting layer, the anode and the cathode are arranged in a stacked manner; wherein

the exciton layer allows triplet-state excitons formed in the exciton layer to form singlet-state excitons via a reverse intersystem crossing process;

a singlet-state energy level of the exciton layer is higher than a singlet-state energy level of a host material in the light-emitting layer, and

an overlap ratio between an emission spectrum of the exciton layer and an absorption spectrum of the host material in the light-emitting layer is greater than a set value;

wherein the exciton layer consists of one compound; and

the compound has a characteristic of emitting thermally activated delayed fluorescence.

2 . The organic electroluminescent device according to claim 1 , wherein the overlap ratio between the emission spectrum of the exciton layer and the absorption spectrum of the host material in the light-emitting layer is greater than 5%.

3 . The organic electroluminescent device according to claim 1 , wherein an electron mobility of the host material in the light-emitting layer is greater than a hole mobility of the host material in the light-emitting layer, and the exciton layer is disposed on a side of the light-emitting layer facing the anode; or

the electron mobility of the host material in the light-emitting layer is smaller than the hole mobility of the host material in the light-emitting layer, and the exciton layer is disposed on a side of the light-emitting layer facing the cathode.

4 . The organic electroluminescent device according to claim 3 , further comprising: at least one auxiliary function layer disposed on a side of the exciton layer facing away from the light-emitting layer; wherein

the singlet-state energy level of the exciton layer is smaller than a singlet-state energy level of an adjacent auxiliary function layer of the at least one auxiliary function layer.

5 . The organic electroluminescent device according to claim 1 , further comprising: at least one auxiliary function layer disposed on a side of the exciton layer facing away from the light-emitting layer; wherein

an Lowest Unoccupied Molecular Orbital, LUMO, value of the at least one compound in the exciton layer is greater than an LUMO value of an adjacent auxiliary function layer of the at least one auxiliary function layer.

6 . The organic electroluminescent device according to claim 5 , wherein an absolute value of a difference between the LUMO value of the at least one compound in the exciton layer and the LUMO value of the adjacent auxiliary function layer is greater than 0.3 eV; and

an absolute value of a difference between an Highest Occupied Molecular Orbital, HOMO, value of the at least one compound in the exciton layer and an HOMO value of the adjacent auxiliary function layer is smaller than 0.5 eV.

7 . The organic electroluminescent device according to claim 4 , wherein when the exciton layer is disposed on the side of the light-emitting layer facing the anode, the at least one auxiliary function layer comprises at least one of following: a hole injection layer, a hole transport layer or an electron blocking layer; or

when the exciton layer is disposed on the side of the light-emitting layer facing the cathode, the at least one auxiliary function layer comprises at least one of following: an electron injection layer, an electron transport layer or a hole blocking layer.

8 . The organic electroluminescent device according to claim 1 , wherein a thickness of the exciton layer is smaller than or equal to 20 nm.

9 . A display panel, comprising a plurality of organic electroluminescent devices, wherein each of the plurality of organic electroluminescent devices is according to claim 1 .

10 . A display apparatus, comprising: the display panel according to claim 9 .

11 . The organic electroluminescent device according to claim 5 , wherein when the exciton layer is disposed on the side of the light-emitting layer facing the anode, the at least one auxiliary function layer comprises at least one of following: a hole injection layer, a hole transport layer or an electron blocking layer; or

when the exciton layer is disposed on the side of the light-emitting layer facing the cathode, the at least one auxiliary function layer comprises at least one of following: an electron injection layer, an electron transport layer or a hole blocking layer.

12 . The display panel according to claim 9 , wherein the overlap ratio between the emission spectrum of the exciton layer and the absorption spectrum of the host material in the light-emitting layer is greater than 5%.

13 . The display panel according to claim 9 , wherein an electron mobility of the host material in the light-emitting layer is greater than a hole mobility of the host material in the light-emitting layer, and the exciton layer is disposed on a side of the light-emitting layer facing the anode; or

the electron mobility of the host material in the light-emitting layer is smaller than the hole mobility of the host material in the light-emitting layer, and the exciton layer is disposed on a side of the light-emitting layer facing the cathode.

14 . The display panel according to claim 13 , the organic electroluminescent device further comprising: at least one auxiliary function layer disposed on a side of the exciton layer facing away from the light-emitting layer; wherein

the singlet-state energy level of the exciton layer is smaller than a singlet-state energy level of an adjacent auxiliary function layer of the at least one auxiliary function layer.

Assignments (1)
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Jun 28, 2022
From: WU, YONG
To: BOE TECHNOLOGY GROUP CO., LTD.
Reel/Frame 060339/0598 →
Priority Claims (1)
CN 202011012901.4 · Sep 23, 2020 · national
Continuity (1)
Related Publication 20230092444A1 · Mar 23, 2023
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